Volume 39 Issue 12
Dec.  2024
Turn off MathJax
Article Contents
Jin Zhang, Lyulei Yang, Minfeng Gong, Yibin Sun. A Stratified and Classified Performance-Based Seismic Design Method and Its Application in Steel Concentrically Braced Frame Systems[J]. STEEL CONSTRUCTION(Chinese & English), 2024, 39(12): 1-11. doi: 10.13206/j.gjgS24110501
Citation: Jin Zhang, Lyulei Yang, Minfeng Gong, Yibin Sun. A Stratified and Classified Performance-Based Seismic Design Method and Its Application in Steel Concentrically Braced Frame Systems[J]. STEEL CONSTRUCTION(Chinese & English), 2024, 39(12): 1-11. doi: 10.13206/j.gjgS24110501

A Stratified and Classified Performance-Based Seismic Design Method and Its Application in Steel Concentrically Braced Frame Systems

doi: 10.13206/j.gjgS24110501
  • Received Date: 2024-11-05
    Available Online: 2025-01-25
  • The performance-based seismic design (PBSD) method transforms the qualitative structural seismic precaution objectives of traditional code-based design methods into multi-level performance objectives which can be quantitatively comalyzed. Based on the numerical simulation analysis, the structural performance accuratery evaluated and targeted seismic measures are ernployed to meet specific structural demands. This method is particularly suitable for out-of-code structures and high-performance design where traditional methods are insufficient to optimize structural performance. The paper introduted a stratified and classified PBSD method, which was developed by the authors’ team through extensive research on performance-based seismic design, component performance evaluation criteria, and engineering applications. The method’s key procedures include defining seismic precaution objectives, conceptual design, performance objective setting, structural analysis, and performance evaluation. The approach emphasizes stratification and classification to refine structural and component performance objectives, integrates elasto-plastic analysis into seismic measures, and uses performance evaluation results as a foundation for design decisions, ensuring alignment with specified performance goals. A multi-storey steel concentrically braced frame located in a high seismic intensity zone was taken as a case study to illustrate the practical application of the proposed method, and the engineering applications of the stratified and classified performance-based seismic design method were discussed as well as its differences from the traditional design methods in codes. The design process began with conceptual design, performance objective setting, and preliminary design based on the "weak brace" concept. Structural analysis, performance evaluation, and design adjustments were iteratively optimized by using computational algorithms to minimize steel usage in primary components. The optimization ensured compliance with predefined performance criteria, including structural drifts, stress ratios of components, and damage grades. The results demonstrated that, compared to the original schemes based on the traditional seismic design methods in codes, in the scheme designed by the stratified and classified performance-based seismic design method, the cross sections of braces decreased significantly, while those of columns connected to braces increased. The steel usage in primary components was reduced by 23%. Furthermore, the scheme designed by the proposed method reduced structural drifts and the maximum total seismic input energy, increased plastic deformation energy dissipation, effectively minimized the damages of vertical components, and distributed the damage of braces more uniformly under rarely occurred earthquake, resulting in a more efficient and resilient energy dissipation system. In conclusion, the proposed stratified and classified PBSD method delivers superior seismic performance while optimizing material usage, demonstrating its potential for efficient and resilient structural design.
  • loading
  • [1]
    肖从真,李建辉,孙超,等. 超限高层结构抗震性能化设计方法探讨[J]. 建筑结构, 2022, 52(21): 8-13.
    [2]
    张谨. 多高层钢结构抗震性能化设计方法及性能评价准则研究与应用[M]. 北京: 中国建筑工业出版社, 2023.
    [3]
    中国勘察设计协会.建筑结构抗震性能化设计标准:T/CECA 20024—2022[S]. 北京: 中国建材工业出版社, 2022.
    [4]
    中华人民共和国住房和城乡建设部.建筑与市政工程抗震通用规范:GB 55002—2021[S]. 北京:中国建筑工业出版社, 2021.
    [5]
    TBI Guidelines Working Group. Guidelines for performance-based seismic design of tall buildings: PEER Report 2017/06[R]. California: Pacific Earthquake Engineering Research Center, 2017.
    [6]
    全国标准化管理委员会.建筑抗震韧性评价标准:GB/T 38591—2020[S]. 北京:中国标准出版社, 2020.
    [7]
    住房和城乡建设部标准定额研究所.基于保持建筑正常使用功能的抗震技术导则:RISN-TG046—2023[S]. 北京:中国建筑工业出版社, 2023.
    [8]
    中国工程建设标准化协会.建筑结构抗倒塌设计标准:T/CECS 392—2021[S]. 北京:中国计划出版社, 2021.
    [9]
    张谨,王立军,杨律磊,等. 基于性能的钢结构抗震设计方法探讨及其改进研究[J]. 钢结构(中英文), 2023, 38(1): 37-65.
    [10]
    张谨, 杨律磊. 动力弹塑性分析在结构设计中的理解与应用[M]. 北京: 中国建筑工业出版社, 2016.
    [11]
    中华人民共和国住房和城乡建设部.建筑抗震设计标准:GB/T 50011—2010[S]. 北京: 中国建筑工业出版社, 2024.
    [12]
    张谨,舒赣平,杨律磊,等. 基于应变的受弯与压弯钢构件抗震性能评价方法研究[J]. 建筑钢结构进展, 2023, 25(8): 26-37.
    [13]
    American Society of Civil Engineers. Seismic evaluation and retrofit of existing buildings: ASCE 41-13[S]. Reston, Virginia: American Society of Civil Engineers, 2014.
    [14]
    谈丽华,张谨,朱寻焱,等. 宿迁京东智慧城超高层办公楼结构设计[J]. 建筑结构, 2022, 52(20): 65-70.
    [15]
    中华人民共和国住房和城乡建设部.高层民用建筑钢结构技术规程:JGJ 99—2015[S]. 北京:中国建材工业出版社, 2015.
    [16]
    周佳,童根树,李常虹,等. 《钢结构与钢-混凝土组合结构设计方法》的理解与应用:钢支撑[J]. 建筑结构, 2022, 52(21): 144-150.
    [17]
    中华人民共和国住房和城乡建设部.钢结构设计标准:GB 50017—2017[S]. 北京: 中国建筑工业出版社, 2018.
    [18]
    韩林海,陶忠. 方钢管混凝土柱的延性系数[J]. 地震工程与工程振动, 2000(4): 56-65.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (38) PDF downloads(7) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return